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通过近零介电常数材料的亚波长孔径实现的增强传输和波束传输。

Beaming and enhanced transmission through a subwavelength aperture via epsilon-near-zero media.

机构信息

Nanotechnology Research Center, Bilkent University, 06800, Ankara, Turkey.

Department of Physics, Bilkent University, 06800, Ankara, Turkey.

出版信息

Sci Rep. 2017 Jul 6;7(1):4741. doi: 10.1038/s41598-017-04680-y.

Abstract

We numerically validate and experimentally realize considerable funneling of electromagnetic energy through a subwavelength aperture that is covered with an epsilon-near-zero metamaterial (ENZ). The epsilon-near-zero metamaterial is composed of two layers of metasurfaces and operates at microwave frequencies. We demonstrate that the presence of the metamaterial at the inner and outer sides of the aperture not only lead to a significant enhancement in light transmission, but also cause a directional emission of light extracting from this hybrid system. In addition to these experimental results, we theoretically demonstrate the same concept in mid-IR region for a subwavelength gold aperture with indium tin oxide as an epsilon-near-zero material. Moreover, we found that using a dielectric spacer in-between the sunwavelength aperture and the ENZ medium, it is possible to red-shift the enhancement/directional frequency of the system.

摘要

我们通过数值验证和实验实现了通过覆盖有近零介电常数超材料(ENZ)的亚波长孔径对电磁能的大量引导。近零介电常数超材料由两层超表面组成,工作在微波频率下。我们证明了在孔径的内、外两侧存在超材料不仅导致光传输的显著增强,而且导致从这个混合系统提取的光的定向发射。除了这些实验结果,我们还在中红外区域对于具有铟锡氧化物作为近零介电常数材料的亚波长金孔径理论上证明了相同的概念。此外,我们发现通过在亚波长孔径和 ENZ 介质之间使用介电间隔物,可以使系统的增强/定向频率红移。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/059f/5500505/153c258e107d/41598_2017_4680_Fig1_HTML.jpg

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